2 * Linux Ethernet device driver for the 3Com Etherlink Plus (3C505)
3 * By Craig Southeren, Juha Laiho and Philip Blundell
5 * 3c505.c This module implements an interface to the 3Com
6 * Etherlink Plus (3c505) Ethernet card. Linux device
7 * driver interface reverse engineered from the Linux 3C509
8 * device drivers. Some 3C505 information gleaned from
9 * the Crynwr packet driver. Still this driver would not
10 * be here without 3C505 technical reference provided by
13 * $Id: 3c505.c,v 1.10 1996/04/16 13:06:27 phil Exp $
15 * Authors: Linux 3c505 device driver by
16 * Craig Southeren, <craigs@ineluki.apana.org.au>
18 * Andrew Tridgell, <tridge@nimbus.anu.edu.au>
19 * Auto irq/address, tuning, cleanup and v1.1.4+ kernel mods by
20 * Juha Laiho, <jlaiho@ichaos.nullnet.fi>
21 * Linux 3C509 driver by
22 * Donald Becker, <becker@super.org>
23 * (Now at <becker@scyld.com>)
24 * Crynwr packet driver by
25 * Krishnan Gopalan and Gregg Stefancik,
26 * Clemson University Engineering Computer Operations.
27 * Portions of the code have been adapted from the 3c505
28 * driver for NCSA Telnet by Bruce Orchard and later
29 * modified by Warren Van Houten and krus@diku.dk.
30 * 3C505 technical information provided by
31 * Terry Murphy, of 3Com Network Adapter Division
32 * Linux 1.3.0 changes by
33 * Alan Cox <Alan.Cox@linux.org>
34 * More debugging, DMA support, currently maintained by
35 * Philip Blundell <Philip.Blundell@pobox.com>
36 * Multicard/soft configurable dma channel/rev 2 hardware support
37 * by Christopher Collins <ccollins@pcug.org.au>
38 * Ethtool support (jgarzik), 11/17/2001
41 #define DRV_NAME "3c505"
42 #define DRV_VERSION "1.10a"
45 /* Theory of operation:
47 * The 3c505 is quite an intelligent board. All communication with it is done
48 * by means of Primary Command Blocks (PCBs); these are transferred using PIO
49 * through the command register. The card has 256k of on-board RAM, which is
50 * used to buffer received packets. It might seem at first that more buffers
51 * are better, but in fact this isn't true. From my tests, it seems that
52 * more than about 10 buffers are unnecessary, and there is a noticeable
53 * performance hit in having more active on the card. So the majority of the
54 * card's memory isn't, in fact, used. Sadly, the card only has one transmit
55 * buffer and, short of loading our own firmware into it (which is what some
56 * drivers resort to) there's nothing we can do about this.
58 * We keep up to 4 "receive packet" commands active on the board at a time.
59 * When a packet comes in, so long as there is a receive command active, the
60 * board will send us a "packet received" PCB and then add the data for that
61 * packet to the DMA queue. If a DMA transfer is not already in progress, we
62 * set one up to start uploading the data. We have to maintain a list of
63 * backlogged receive packets, because the card may decide to tell us about
64 * a newly-arrived packet at any time, and we may not be able to start a DMA
65 * transfer immediately (ie one may already be going on). We can't NAK the
66 * PCB, because then it would throw the packet away.
68 * Trying to send a PCB to the card at the wrong moment seems to have bad
69 * effects. If we send it a transmit PCB while a receive DMA is happening,
70 * it will just NAK the PCB and so we will have wasted our time. Worse, it
71 * sometimes seems to interrupt the transfer. The majority of the low-level
72 * code is protected by one huge semaphore -- "busy" -- which is set whenever
73 * it probably isn't safe to do anything to the card. The receive routine
74 * must gain a lock on "busy" before it can start a DMA transfer, and the
75 * transmit routine must gain a lock before it sends the first PCB to the card.
76 * The send_pcb() routine also has an internal semaphore to protect it against
77 * being re-entered (which would be disastrous) -- this is needed because
78 * several things can happen asynchronously (re-priming the receiver and
79 * asking the card for statistics, for example). send_pcb() will also refuse
80 * to talk to the card at all if a DMA upload is happening. The higher-level
81 * networking code will reschedule a later retry if some part of the driver
82 * is blocked. In practice, this doesn't seem to happen very often.
85 /* This driver may now work with revision 2.x hardware, since all the read
86 * operations on the HCR have been removed (we now keep our own softcopy).
87 * But I don't have an old card to test it on.
89 * This has had the bad effect that the autoprobe routine is now a bit
90 * less friendly to other devices. However, it was never very good.
91 * before, so I doubt it will hurt anybody.
94 /* The driver is a mess. I took Craig's and Juha's code, and hacked it firstly
95 * to make it more reliable, and secondly to add DMA mode. Many things could
96 * probably be done better; the concurrency protection is particularly awful.
99 #include <linux/module.h>
100 #include <linux/kernel.h>
101 #include <linux/string.h>
102 #include <linux/interrupt.h>
103 #include <linux/errno.h>
104 #include <linux/in.h>
105 #include <linux/slab.h>
106 #include <linux/ioport.h>
107 #include <linux/spinlock.h>
108 #include <linux/ethtool.h>
109 #include <linux/delay.h>
111 #include <asm/uaccess.h>
112 #include <asm/bitops.h>
116 #include <linux/netdevice.h>
117 #include <linux/etherdevice.h>
118 #include <linux/skbuff.h>
119 #include <linux/init.h>
123 /*********************************************************
125 * define debug messages here as common strings to reduce space
127 *********************************************************/
129 static const char filename
[] = __FILE__
;
131 static const char timeout_msg
[] = "*** timeout at %s:%s (line %d) ***\n";
132 #define TIMEOUT_MSG(lineno) \
133 printk(timeout_msg, filename,__FUNCTION__,(lineno))
135 static const char invalid_pcb_msg
[] =
136 "*** invalid pcb length %d at %s:%s (line %d) ***\n";
137 #define INVALID_PCB_MSG(len) \
138 printk(invalid_pcb_msg, (len),filename,__FUNCTION__,__LINE__)
140 static char search_msg
[] __initdata
= KERN_INFO
"%s: Looking for 3c505 adapter at address %#x...";
142 static char stilllooking_msg
[] __initdata
= "still looking...";
144 static char found_msg
[] __initdata
= "found.\n";
146 static char notfound_msg
[] __initdata
= "not found (reason = %d)\n";
148 static char couldnot_msg
[] __initdata
= KERN_INFO
"%s: 3c505 not found\n";
150 /*********************************************************
152 * various other debug stuff
154 *********************************************************/
157 static int elp_debug
= ELP_DEBUG
;
159 static int elp_debug
;
161 #define debug elp_debug
164 * 0 = no messages (well, some)
165 * 1 = messages when high level commands performed
166 * 2 = messages when low level commands performed
167 * 3 = messages when interrupts received
170 /*****************************************************************
174 *****************************************************************/
185 /*****************************************************************
187 * List of I/O-addresses we try to auto-sense
188 * Last element MUST BE 0!
189 *****************************************************************/
191 static int addr_list
[] __initdata
= {0x300, 0x280, 0x310, 0};
193 /* Dma Memory related stuff */
195 static unsigned long dma_mem_alloc(int size
)
197 int order
= get_order(size
);
198 return __get_dma_pages(GFP_KERNEL
, order
);
202 /*****************************************************************
204 * Functions for I/O (note the inline !)
206 *****************************************************************/
208 static inline unsigned char inb_status(unsigned int base_addr
)
210 return inb(base_addr
+ PORT_STATUS
);
213 static inline int inb_command(unsigned int base_addr
)
215 return inb(base_addr
+ PORT_COMMAND
);
218 static inline void outb_control(unsigned char val
, struct net_device
*dev
)
220 outb(val
, dev
->base_addr
+ PORT_CONTROL
);
221 ((elp_device
*)(dev
->priv
))->hcr_val
= val
;
224 #define HCR_VAL(x) (((elp_device *)((x)->priv))->hcr_val)
226 static inline void outb_command(unsigned char val
, unsigned int base_addr
)
228 outb(val
, base_addr
+ PORT_COMMAND
);
231 static inline unsigned int inw_data(unsigned int base_addr
)
233 return inw(base_addr
+ PORT_DATA
);
236 static inline void outw_data(unsigned int val
, unsigned int base_addr
)
238 outw(val
, base_addr
+ PORT_DATA
);
241 static inline unsigned int backlog_next(unsigned int n
)
243 return (n
+ 1) % BACKLOG_SIZE
;
246 /*****************************************************************
248 * useful functions for accessing the adapter
250 *****************************************************************/
253 * use this routine when accessing the ASF bits as they are
254 * changed asynchronously by the adapter
257 /* get adapter PCB status */
258 #define GET_ASF(addr) \
259 (get_status(addr)&ASF_PCB_MASK)
261 static inline int get_status(unsigned int base_addr
)
263 unsigned long timeout
= jiffies
+ 10*HZ
/100;
266 stat1
= inb_status(base_addr
);
267 } while (stat1
!= inb_status(base_addr
) && time_before(jiffies
, timeout
));
268 if (time_after_eq(jiffies
, timeout
))
269 TIMEOUT_MSG(__LINE__
);
273 static inline void set_hsf(struct net_device
*dev
, int hsf
)
275 elp_device
*adapter
= dev
->priv
;
278 spin_lock_irqsave(&adapter
->lock
, flags
);
279 outb_control((HCR_VAL(dev
) & ~HSF_PCB_MASK
) | hsf
, dev
);
280 spin_unlock_irqrestore(&adapter
->lock
, flags
);
283 static int start_receive(struct net_device
*, pcb_struct
*);
285 inline static void adapter_reset(struct net_device
*dev
)
287 unsigned long timeout
;
288 elp_device
*adapter
= dev
->priv
;
289 unsigned char orig_hcr
= adapter
->hcr_val
;
291 outb_control(0, dev
);
293 if (inb_status(dev
->base_addr
) & ACRF
) {
295 inb_command(dev
->base_addr
);
296 timeout
= jiffies
+ 2*HZ
/100;
297 while (time_before_eq(jiffies
, timeout
) && !(inb_status(dev
->base_addr
) & ACRF
));
298 } while (inb_status(dev
->base_addr
) & ACRF
);
299 set_hsf(dev
, HSF_PCB_NAK
);
301 outb_control(adapter
->hcr_val
| ATTN
| DIR, dev
);
303 outb_control(adapter
->hcr_val
& ~ATTN
, dev
);
305 outb_control(adapter
->hcr_val
| FLSH
, dev
);
307 outb_control(adapter
->hcr_val
& ~FLSH
, dev
);
310 outb_control(orig_hcr
, dev
);
311 if (!start_receive(dev
, &adapter
->tx_pcb
))
312 printk(KERN_ERR
"%s: start receive command failed \n", dev
->name
);
315 /* Check to make sure that a DMA transfer hasn't timed out. This should
316 * never happen in theory, but seems to occur occasionally if the card gets
317 * prodded at the wrong time.
319 static inline void check_3c505_dma(struct net_device
*dev
)
321 elp_device
*adapter
= dev
->priv
;
322 if (adapter
->dmaing
&& time_after(jiffies
, adapter
->current_dma
.start_time
+ 10)) {
323 unsigned long flags
, f
;
324 printk(KERN_ERR
"%s: DMA %s timed out, %d bytes left\n", dev
->name
, adapter
->current_dma
.direction
? "download" : "upload", get_dma_residue(dev
->dma
));
325 spin_lock_irqsave(&adapter
->lock
, flags
);
330 disable_dma(dev
->dma
);
333 if (adapter
->rx_active
)
334 adapter
->rx_active
--;
335 outb_control(adapter
->hcr_val
& ~(DMAE
| TCEN
| DIR), dev
);
336 spin_unlock_irqrestore(&adapter
->lock
, flags
);
340 /* Primitive functions used by send_pcb() */
341 static inline unsigned int send_pcb_slow(unsigned int base_addr
, unsigned char byte
)
343 unsigned long timeout
;
344 outb_command(byte
, base_addr
);
345 for (timeout
= jiffies
+ 5*HZ
/100; time_before(jiffies
, timeout
);) {
346 if (inb_status(base_addr
) & HCRE
)
349 printk(KERN_WARNING
"3c505: send_pcb_slow timed out\n");
353 static inline unsigned int send_pcb_fast(unsigned int base_addr
, unsigned char byte
)
355 unsigned int timeout
;
356 outb_command(byte
, base_addr
);
357 for (timeout
= 0; timeout
< 40000; timeout
++) {
358 if (inb_status(base_addr
) & HCRE
)
361 printk(KERN_WARNING
"3c505: send_pcb_fast timed out\n");
365 /* Check to see if the receiver needs restarting, and kick it if so */
366 static inline void prime_rx(struct net_device
*dev
)
368 elp_device
*adapter
= dev
->priv
;
369 while (adapter
->rx_active
< ELP_RX_PCBS
&& netif_running(dev
)) {
370 if (!start_receive(dev
, &adapter
->itx_pcb
))
375 /*****************************************************************
378 * Send a PCB to the adapter.
380 * output byte to command reg --<--+
381 * wait until HCRE is non zero |
382 * loop until all bytes sent -->--+
383 * set HSF1 and HSF2 to 1
385 * wait until ASF give ACK or NAK
386 * set HSF1 and HSF2 to 0
388 *****************************************************************/
390 /* This can be quite slow -- the adapter is allowed to take up to 40ms
391 * to respond to the initial interrupt.
393 * We run initially with interrupts turned on, but with a semaphore set
394 * so that nobody tries to re-enter this code. Once the first byte has
395 * gone through, we turn interrupts off and then send the others (the
396 * timeout is reduced to 500us).
399 static int send_pcb(struct net_device
*dev
, pcb_struct
* pcb
)
402 unsigned long timeout
;
403 elp_device
*adapter
= dev
->priv
;
406 check_3c505_dma(dev
);
408 if (adapter
->dmaing
&& adapter
->current_dma
.direction
== 0)
411 /* Avoid contention */
412 if (test_and_set_bit(1, &adapter
->send_pcb_semaphore
)) {
413 if (elp_debug
>= 3) {
414 printk(KERN_DEBUG
"%s: send_pcb entered while threaded\n", dev
->name
);
419 * load each byte into the command register and
420 * wait for the HCRE bit to indicate the adapter
425 if (send_pcb_slow(dev
->base_addr
, pcb
->command
))
428 spin_lock_irqsave(&adapter
->lock
, flags
);
430 if (send_pcb_fast(dev
->base_addr
, pcb
->length
))
433 for (i
= 0; i
< pcb
->length
; i
++) {
434 if (send_pcb_fast(dev
->base_addr
, pcb
->data
.raw
[i
]))
438 outb_control(adapter
->hcr_val
| 3, dev
); /* signal end of PCB */
439 outb_command(2 + pcb
->length
, dev
->base_addr
);
441 /* now wait for the acknowledgement */
442 spin_unlock_irqrestore(&adapter
->lock
, flags
);
444 for (timeout
= jiffies
+ 5*HZ
/100; time_before(jiffies
, timeout
);) {
445 switch (GET_ASF(dev
->base_addr
)) {
447 adapter
->send_pcb_semaphore
= 0;
452 printk(KERN_DEBUG
"%s: send_pcb got NAK\n", dev
->name
);
459 printk(KERN_DEBUG
"%s: timeout waiting for PCB acknowledge (status %02x)\n", dev
->name
, inb_status(dev
->base_addr
));
463 spin_unlock_irqrestore(&adapter
->lock
, flags
);
465 adapter
->send_pcb_semaphore
= 0;
470 /*****************************************************************
473 * Read a PCB from the adapter
475 * wait for ACRF to be non-zero ---<---+
477 * if ASF1 and ASF2 were not both one |
478 * before byte was read, loop --->---+
479 * set HSF1 and HSF2 for ack
481 *****************************************************************/
483 static int receive_pcb(struct net_device
*dev
, pcb_struct
* pcb
)
488 unsigned long timeout
;
491 elp_device
*adapter
= dev
->priv
;
495 /* get the command code */
496 timeout
= jiffies
+ 2*HZ
/100;
497 while (((stat
= get_status(dev
->base_addr
)) & ACRF
) == 0 && time_before(jiffies
, timeout
));
498 if (time_after_eq(jiffies
, timeout
)) {
499 TIMEOUT_MSG(__LINE__
);
502 pcb
->command
= inb_command(dev
->base_addr
);
504 /* read the data length */
505 timeout
= jiffies
+ 3*HZ
/100;
506 while (((stat
= get_status(dev
->base_addr
)) & ACRF
) == 0 && time_before(jiffies
, timeout
));
507 if (time_after_eq(jiffies
, timeout
)) {
508 TIMEOUT_MSG(__LINE__
);
509 printk(KERN_INFO
"%s: status %02x\n", dev
->name
, stat
);
512 pcb
->length
= inb_command(dev
->base_addr
);
514 if (pcb
->length
> MAX_PCB_DATA
) {
515 INVALID_PCB_MSG(pcb
->length
);
520 spin_lock_irqsave(&adapter
->lock
, flags
);
524 while (((stat
= get_status(dev
->base_addr
)) & ACRF
) == 0 && j
++ < 20000);
525 pcb
->data
.raw
[i
++] = inb_command(dev
->base_addr
);
526 if (i
> MAX_PCB_DATA
)
528 } while ((stat
& ASF_PCB_MASK
) != ASF_PCB_END
&& j
< 20000);
529 spin_unlock_irqrestore(&adapter
->lock
, flags
);
531 TIMEOUT_MSG(__LINE__
);
534 /* woops, the last "data" byte was really the length! */
535 total_length
= pcb
->data
.raw
[--i
];
537 /* safety check total length vs data length */
538 if (total_length
!= (pcb
->length
+ 2)) {
540 printk(KERN_WARNING
"%s: mangled PCB received\n", dev
->name
);
541 set_hsf(dev
, HSF_PCB_NAK
);
545 if (pcb
->command
== CMD_RECEIVE_PACKET_COMPLETE
) {
546 if (test_and_set_bit(0, (void *) &adapter
->busy
)) {
547 if (backlog_next(adapter
->rx_backlog
.in
) == adapter
->rx_backlog
.out
) {
548 set_hsf(dev
, HSF_PCB_NAK
);
549 printk(KERN_WARNING
"%s: PCB rejected, transfer in progress and backlog full\n", dev
->name
);
557 set_hsf(dev
, HSF_PCB_ACK
);
561 /******************************************************
563 * queue a receive command on the adapter so we will get an
564 * interrupt when a packet is received.
566 ******************************************************/
568 static int start_receive(struct net_device
*dev
, pcb_struct
* tx_pcb
)
571 elp_device
*adapter
= dev
->priv
;
574 printk(KERN_DEBUG
"%s: restarting receiver\n", dev
->name
);
575 tx_pcb
->command
= CMD_RECEIVE_PACKET
;
576 tx_pcb
->length
= sizeof(struct Rcv_pkt
);
577 tx_pcb
->data
.rcv_pkt
.buf_seg
578 = tx_pcb
->data
.rcv_pkt
.buf_ofs
= 0; /* Unused */
579 tx_pcb
->data
.rcv_pkt
.buf_len
= 1600;
580 tx_pcb
->data
.rcv_pkt
.timeout
= 0; /* set timeout to zero */
581 status
= send_pcb(dev
, tx_pcb
);
583 adapter
->rx_active
++;
587 /******************************************************
589 * extract a packet from the adapter
590 * this routine is only called from within the interrupt
591 * service routine, so no cli/sti calls are needed
592 * note that the length is always assumed to be even
594 ******************************************************/
596 static void receive_packet(struct net_device
*dev
, int len
)
599 elp_device
*adapter
= dev
->priv
;
604 rlen
= (len
+ 1) & ~1;
605 skb
= dev_alloc_skb(rlen
+ 2);
608 printk(KERN_WARNING
"%s: memory squeeze, dropping packet\n", dev
->name
);
609 target
= adapter
->dma_buffer
;
610 adapter
->current_dma
.target
= NULL
;
616 target
= skb_put(skb
, rlen
);
617 if ((unsigned long)(target
+ rlen
) >= MAX_DMA_ADDRESS
) {
618 adapter
->current_dma
.target
= target
;
619 target
= adapter
->dma_buffer
;
621 adapter
->current_dma
.target
= NULL
;
624 /* if this happens, we die */
625 if (test_and_set_bit(0, (void *) &adapter
->dmaing
))
626 printk(KERN_ERR
"%s: rx blocked, DMA in progress, dir %d\n", dev
->name
, adapter
->current_dma
.direction
);
629 adapter
->current_dma
.direction
= 0;
630 adapter
->current_dma
.length
= rlen
;
631 adapter
->current_dma
.skb
= skb
;
632 adapter
->current_dma
.start_time
= jiffies
;
634 outb_control(adapter
->hcr_val
| DIR | TCEN
| DMAE
, dev
);
636 flags
=claim_dma_lock();
637 disable_dma(dev
->dma
);
638 clear_dma_ff(dev
->dma
);
639 set_dma_mode(dev
->dma
, 0x04); /* dma read */
640 set_dma_addr(dev
->dma
, isa_virt_to_bus(target
));
641 set_dma_count(dev
->dma
, rlen
);
642 enable_dma(dev
->dma
);
643 release_dma_lock(flags
);
645 if (elp_debug
>= 3) {
646 printk(KERN_DEBUG
"%s: rx DMA transfer started\n", dev
->name
);
649 if (adapter
->rx_active
)
650 adapter
->rx_active
--;
653 printk(KERN_WARNING
"%s: receive_packet called, busy not set.\n", dev
->name
);
656 /******************************************************
660 ******************************************************/
662 static irqreturn_t
elp_interrupt(int irq
, void *dev_id
, struct pt_regs
*reg_ptr
)
667 struct net_device
*dev
;
669 unsigned long timeout
;
672 adapter
= (elp_device
*) dev
->priv
;
674 spin_lock(&adapter
->lock
);
678 * has a DMA transfer finished?
680 if (inb_status(dev
->base_addr
) & DONE
) {
681 if (!adapter
->dmaing
) {
682 printk(KERN_WARNING
"%s: phantom DMA completed\n", dev
->name
);
684 if (elp_debug
>= 3) {
685 printk(KERN_DEBUG
"%s: %s DMA complete, status %02x\n", dev
->name
, adapter
->current_dma
.direction
? "tx" : "rx", inb_status(dev
->base_addr
));
688 outb_control(adapter
->hcr_val
& ~(DMAE
| TCEN
| DIR), dev
);
689 if (adapter
->current_dma
.direction
) {
690 dev_kfree_skb_irq(adapter
->current_dma
.skb
);
692 struct sk_buff
*skb
= adapter
->current_dma
.skb
;
694 if (adapter
->current_dma
.target
) {
695 /* have already done the skb_put() */
696 memcpy(adapter
->current_dma
.target
, adapter
->dma_buffer
, adapter
->current_dma
.length
);
698 skb
->protocol
= eth_type_trans(skb
,dev
);
699 adapter
->stats
.rx_bytes
+= skb
->len
;
701 dev
->last_rx
= jiffies
;
705 if (adapter
->rx_backlog
.in
!= adapter
->rx_backlog
.out
) {
706 int t
= adapter
->rx_backlog
.length
[adapter
->rx_backlog
.out
];
707 adapter
->rx_backlog
.out
= backlog_next(adapter
->rx_backlog
.out
);
709 printk(KERN_DEBUG
"%s: receiving backlogged packet (%d)\n", dev
->name
, t
);
710 receive_packet(dev
, t
);
715 /* has one timed out? */
716 check_3c505_dma(dev
);
720 * receive a PCB from the adapter
722 timeout
= jiffies
+ 3*HZ
/100;
723 while ((inb_status(dev
->base_addr
) & ACRF
) != 0 && time_before(jiffies
, timeout
)) {
724 if (receive_pcb(dev
, &adapter
->irx_pcb
)) {
725 switch (adapter
->irx_pcb
.command
)
730 * received a packet - this must be handled fast
733 case CMD_RECEIVE_PACKET_COMPLETE
:
734 /* if the device isn't open, don't pass packets up the stack */
735 if (!netif_running(dev
))
737 len
= adapter
->irx_pcb
.data
.rcv_resp
.pkt_len
;
738 dlen
= adapter
->irx_pcb
.data
.rcv_resp
.buf_len
;
739 if (adapter
->irx_pcb
.data
.rcv_resp
.timeout
!= 0) {
740 printk(KERN_ERR
"%s: interrupt - packet not received correctly\n", dev
->name
);
742 if (elp_debug
>= 3) {
743 printk(KERN_DEBUG
"%s: interrupt - packet received of length %i (%i)\n", dev
->name
, len
, dlen
);
745 if (adapter
->irx_pcb
.command
== 0xff) {
747 printk(KERN_DEBUG
"%s: adding packet to backlog (len = %d)\n", dev
->name
, dlen
);
748 adapter
->rx_backlog
.length
[adapter
->rx_backlog
.in
] = dlen
;
749 adapter
->rx_backlog
.in
= backlog_next(adapter
->rx_backlog
.in
);
751 receive_packet(dev
, dlen
);
754 printk(KERN_DEBUG
"%s: packet received\n", dev
->name
);
759 * 82586 configured correctly
761 case CMD_CONFIGURE_82586_RESPONSE
:
762 adapter
->got
[CMD_CONFIGURE_82586
] = 1;
764 printk(KERN_DEBUG
"%s: interrupt - configure response received\n", dev
->name
);
768 * Adapter memory configuration
770 case CMD_CONFIGURE_ADAPTER_RESPONSE
:
771 adapter
->got
[CMD_CONFIGURE_ADAPTER_MEMORY
] = 1;
773 printk(KERN_DEBUG
"%s: Adapter memory configuration %s.\n", dev
->name
,
774 adapter
->irx_pcb
.data
.failed
? "failed" : "succeeded");
778 * Multicast list loading
780 case CMD_LOAD_MULTICAST_RESPONSE
:
781 adapter
->got
[CMD_LOAD_MULTICAST_LIST
] = 1;
783 printk(KERN_DEBUG
"%s: Multicast address list loading %s.\n", dev
->name
,
784 adapter
->irx_pcb
.data
.failed
? "failed" : "succeeded");
788 * Station address setting
790 case CMD_SET_ADDRESS_RESPONSE
:
791 adapter
->got
[CMD_SET_STATION_ADDRESS
] = 1;
793 printk(KERN_DEBUG
"%s: Ethernet address setting %s.\n", dev
->name
,
794 adapter
->irx_pcb
.data
.failed
? "failed" : "succeeded");
799 * received board statistics
801 case CMD_NETWORK_STATISTICS_RESPONSE
:
802 adapter
->stats
.rx_packets
+= adapter
->irx_pcb
.data
.netstat
.tot_recv
;
803 adapter
->stats
.tx_packets
+= adapter
->irx_pcb
.data
.netstat
.tot_xmit
;
804 adapter
->stats
.rx_crc_errors
+= adapter
->irx_pcb
.data
.netstat
.err_CRC
;
805 adapter
->stats
.rx_frame_errors
+= adapter
->irx_pcb
.data
.netstat
.err_align
;
806 adapter
->stats
.rx_fifo_errors
+= adapter
->irx_pcb
.data
.netstat
.err_ovrrun
;
807 adapter
->stats
.rx_over_errors
+= adapter
->irx_pcb
.data
.netstat
.err_res
;
808 adapter
->got
[CMD_NETWORK_STATISTICS
] = 1;
810 printk(KERN_DEBUG
"%s: interrupt - statistics response received\n", dev
->name
);
816 case CMD_TRANSMIT_PACKET_COMPLETE
:
818 printk(KERN_DEBUG
"%s: interrupt - packet sent\n", dev
->name
);
819 if (!netif_running(dev
))
821 switch (adapter
->irx_pcb
.data
.xmit_resp
.c_stat
) {
823 adapter
->stats
.tx_aborted_errors
++;
824 printk(KERN_INFO
"%s: transmit timed out, network cable problem?\n", dev
->name
);
827 adapter
->stats
.tx_fifo_errors
++;
828 printk(KERN_INFO
"%s: transmit timed out, FIFO underrun\n", dev
->name
);
831 netif_wake_queue(dev
);
838 printk(KERN_DEBUG
"%s: unknown PCB received - %2.2x\n", dev
->name
, adapter
->irx_pcb
.command
);
842 printk(KERN_WARNING
"%s: failed to read PCB on interrupt\n", dev
->name
);
847 } while (icount
++ < 5 && (inb_status(dev
->base_addr
) & (ACRF
| DONE
)));
852 * indicate no longer in interrupt routine
854 spin_unlock(&adapter
->lock
);
859 /******************************************************
863 ******************************************************/
865 static int elp_open(struct net_device
*dev
)
873 printk(KERN_DEBUG
"%s: request to open device\n", dev
->name
);
876 * make sure we actually found the device
878 if (adapter
== NULL
) {
879 printk(KERN_ERR
"%s: Opening a non-existent physical device\n", dev
->name
);
883 * disable interrupts on the board
885 outb_control(0, dev
);
888 * clear any pending interrupts
890 inb_command(dev
->base_addr
);
894 * no receive PCBs active
896 adapter
->rx_active
= 0;
899 adapter
->send_pcb_semaphore
= 0;
900 adapter
->rx_backlog
.in
= 0;
901 adapter
->rx_backlog
.out
= 0;
903 spin_lock_init(&adapter
->lock
);
906 * install our interrupt service routine
908 if ((retval
= request_irq(dev
->irq
, &elp_interrupt
, 0, dev
->name
, dev
))) {
909 printk(KERN_ERR
"%s: could not allocate IRQ%d\n", dev
->name
, dev
->irq
);
912 if ((retval
= request_dma(dev
->dma
, dev
->name
))) {
913 free_irq(dev
->irq
, dev
);
914 printk(KERN_ERR
"%s: could not allocate DMA%d channel\n", dev
->name
, dev
->dma
);
917 adapter
->dma_buffer
= (void *) dma_mem_alloc(DMA_BUFFER_SIZE
);
918 if (!adapter
->dma_buffer
) {
919 printk(KERN_ERR
"%s: could not allocate DMA buffer\n", dev
->name
);
921 free_irq(dev
->irq
, dev
);
927 * enable interrupts on the board
929 outb_control(CMDE
, dev
);
932 * configure adapter memory: we need 10 multicast addresses, default==0
935 printk(KERN_DEBUG
"%s: sending 3c505 memory configuration command\n", dev
->name
);
936 adapter
->tx_pcb
.command
= CMD_CONFIGURE_ADAPTER_MEMORY
;
937 adapter
->tx_pcb
.data
.memconf
.cmd_q
= 10;
938 adapter
->tx_pcb
.data
.memconf
.rcv_q
= 20;
939 adapter
->tx_pcb
.data
.memconf
.mcast
= 10;
940 adapter
->tx_pcb
.data
.memconf
.frame
= 20;
941 adapter
->tx_pcb
.data
.memconf
.rcv_b
= 20;
942 adapter
->tx_pcb
.data
.memconf
.progs
= 0;
943 adapter
->tx_pcb
.length
= sizeof(struct Memconf
);
944 adapter
->got
[CMD_CONFIGURE_ADAPTER_MEMORY
] = 0;
945 if (!send_pcb(dev
, &adapter
->tx_pcb
))
946 printk(KERN_ERR
"%s: couldn't send memory configuration command\n", dev
->name
);
948 unsigned long timeout
= jiffies
+ TIMEOUT
;
949 while (adapter
->got
[CMD_CONFIGURE_ADAPTER_MEMORY
] == 0 && time_before(jiffies
, timeout
));
950 if (time_after_eq(jiffies
, timeout
))
951 TIMEOUT_MSG(__LINE__
);
956 * configure adapter to receive broadcast messages and wait for response
959 printk(KERN_DEBUG
"%s: sending 82586 configure command\n", dev
->name
);
960 adapter
->tx_pcb
.command
= CMD_CONFIGURE_82586
;
961 adapter
->tx_pcb
.data
.configure
= NO_LOOPBACK
| RECV_BROAD
;
962 adapter
->tx_pcb
.length
= 2;
963 adapter
->got
[CMD_CONFIGURE_82586
] = 0;
964 if (!send_pcb(dev
, &adapter
->tx_pcb
))
965 printk(KERN_ERR
"%s: couldn't send 82586 configure command\n", dev
->name
);
967 unsigned long timeout
= jiffies
+ TIMEOUT
;
968 while (adapter
->got
[CMD_CONFIGURE_82586
] == 0 && time_before(jiffies
, timeout
));
969 if (time_after_eq(jiffies
, timeout
))
970 TIMEOUT_MSG(__LINE__
);
973 /* enable burst-mode DMA */
974 /* outb(0x1, dev->base_addr + PORT_AUXDMA); */
977 * queue receive commands to provide buffering
981 printk(KERN_DEBUG
"%s: %d receive PCBs active\n", dev
->name
, adapter
->rx_active
);
984 * device is now officially open!
987 netif_start_queue(dev
);
992 /******************************************************
994 * send a packet to the adapter
996 ******************************************************/
998 static int send_packet(struct net_device
*dev
, struct sk_buff
*skb
)
1000 elp_device
*adapter
= dev
->priv
;
1001 unsigned long target
;
1002 unsigned long flags
;
1005 * make sure the length is even and no shorter than 60 bytes
1007 unsigned int nlen
= (((skb
->len
< 60) ? 60 : skb
->len
) + 1) & (~1);
1009 if (test_and_set_bit(0, (void *) &adapter
->busy
)) {
1011 printk(KERN_DEBUG
"%s: transmit blocked\n", dev
->name
);
1015 adapter
->stats
.tx_bytes
+= nlen
;
1018 * send the adapter a transmit packet command. Ignore segment and offset
1019 * and make sure the length is even
1021 adapter
->tx_pcb
.command
= CMD_TRANSMIT_PACKET
;
1022 adapter
->tx_pcb
.length
= sizeof(struct Xmit_pkt
);
1023 adapter
->tx_pcb
.data
.xmit_pkt
.buf_ofs
1024 = adapter
->tx_pcb
.data
.xmit_pkt
.buf_seg
= 0; /* Unused */
1025 adapter
->tx_pcb
.data
.xmit_pkt
.pkt_len
= nlen
;
1027 if (!send_pcb(dev
, &adapter
->tx_pcb
)) {
1031 /* if this happens, we die */
1032 if (test_and_set_bit(0, (void *) &adapter
->dmaing
))
1033 printk(KERN_DEBUG
"%s: tx: DMA %d in progress\n", dev
->name
, adapter
->current_dma
.direction
);
1035 adapter
->current_dma
.direction
= 1;
1036 adapter
->current_dma
.start_time
= jiffies
;
1038 if ((unsigned long)(skb
->data
+ nlen
) >= MAX_DMA_ADDRESS
|| nlen
!= skb
->len
) {
1039 memcpy(adapter
->dma_buffer
, skb
->data
, nlen
);
1040 memset(adapter
->dma_buffer
+skb
->len
, 0, nlen
-skb
->len
);
1041 target
= isa_virt_to_bus(adapter
->dma_buffer
);
1044 target
= isa_virt_to_bus(skb
->data
);
1046 adapter
->current_dma
.skb
= skb
;
1048 flags
=claim_dma_lock();
1049 disable_dma(dev
->dma
);
1050 clear_dma_ff(dev
->dma
);
1051 set_dma_mode(dev
->dma
, 0x48); /* dma memory -> io */
1052 set_dma_addr(dev
->dma
, target
);
1053 set_dma_count(dev
->dma
, nlen
);
1054 outb_control(adapter
->hcr_val
| DMAE
| TCEN
, dev
);
1055 enable_dma(dev
->dma
);
1056 release_dma_lock(flags
);
1059 printk(KERN_DEBUG
"%s: DMA transfer started\n", dev
->name
);
1065 * The upper layer thinks we timed out
1068 static void elp_timeout(struct net_device
*dev
)
1070 elp_device
*adapter
= dev
->priv
;
1073 stat
= inb_status(dev
->base_addr
);
1074 printk(KERN_WARNING
"%s: transmit timed out, lost %s?\n", dev
->name
, (stat
& ACRF
) ? "interrupt" : "command");
1076 printk(KERN_DEBUG
"%s: status %#02x\n", dev
->name
, stat
);
1077 dev
->trans_start
= jiffies
;
1078 adapter
->stats
.tx_dropped
++;
1079 netif_wake_queue(dev
);
1082 /******************************************************
1084 * start the transmitter
1085 * return 0 if sent OK, else return 1
1087 ******************************************************/
1089 static int elp_start_xmit(struct sk_buff
*skb
, struct net_device
*dev
)
1091 unsigned long flags
;
1092 elp_device
*adapter
= dev
->priv
;
1094 spin_lock_irqsave(&adapter
->lock
, flags
);
1095 check_3c505_dma(dev
);
1098 printk(KERN_DEBUG
"%s: request to send packet of length %d\n", dev
->name
, (int) skb
->len
);
1100 netif_stop_queue(dev
);
1103 * send the packet at skb->data for skb->len
1105 if (!send_packet(dev
, skb
)) {
1106 if (elp_debug
>= 2) {
1107 printk(KERN_DEBUG
"%s: failed to transmit packet\n", dev
->name
);
1109 spin_unlock_irqrestore(&adapter
->lock
, flags
);
1113 printk(KERN_DEBUG
"%s: packet of length %d sent\n", dev
->name
, (int) skb
->len
);
1116 * start the transmit timeout
1118 dev
->trans_start
= jiffies
;
1121 spin_unlock_irqrestore(&adapter
->lock
, flags
);
1122 netif_start_queue(dev
);
1126 /******************************************************
1128 * return statistics on the board
1130 ******************************************************/
1132 static struct net_device_stats
*elp_get_stats(struct net_device
*dev
)
1134 elp_device
*adapter
= (elp_device
*) dev
->priv
;
1137 printk(KERN_DEBUG
"%s: request for stats\n", dev
->name
);
1139 /* If the device is closed, just return the latest stats we have,
1140 - we cannot ask from the adapter without interrupts */
1141 if (!netif_running(dev
))
1142 return &adapter
->stats
;
1144 /* send a get statistics command to the board */
1145 adapter
->tx_pcb
.command
= CMD_NETWORK_STATISTICS
;
1146 adapter
->tx_pcb
.length
= 0;
1147 adapter
->got
[CMD_NETWORK_STATISTICS
] = 0;
1148 if (!send_pcb(dev
, &adapter
->tx_pcb
))
1149 printk(KERN_ERR
"%s: couldn't send get statistics command\n", dev
->name
);
1151 unsigned long timeout
= jiffies
+ TIMEOUT
;
1152 while (adapter
->got
[CMD_NETWORK_STATISTICS
] == 0 && time_before(jiffies
, timeout
));
1153 if (time_after_eq(jiffies
, timeout
)) {
1154 TIMEOUT_MSG(__LINE__
);
1155 return &adapter
->stats
;
1159 /* statistics are now up to date */
1160 return &adapter
->stats
;
1164 static void netdev_get_drvinfo(struct net_device
*dev
,
1165 struct ethtool_drvinfo
*info
)
1167 strcpy(info
->driver
, DRV_NAME
);
1168 strcpy(info
->version
, DRV_VERSION
);
1169 sprintf(info
->bus_info
, "ISA 0x%lx", dev
->base_addr
);
1172 static u32
netdev_get_msglevel(struct net_device
*dev
)
1177 static void netdev_set_msglevel(struct net_device
*dev
, u32 level
)
1182 static struct ethtool_ops netdev_ethtool_ops
= {
1183 .get_drvinfo
= netdev_get_drvinfo
,
1184 .get_msglevel
= netdev_get_msglevel
,
1185 .set_msglevel
= netdev_set_msglevel
,
1188 /******************************************************
1192 ******************************************************/
1194 static int elp_close(struct net_device
*dev
)
1196 elp_device
*adapter
;
1198 adapter
= dev
->priv
;
1201 printk(KERN_DEBUG
"%s: request to close device\n", dev
->name
);
1203 netif_stop_queue(dev
);
1205 /* Someone may request the device statistic information even when
1206 * the interface is closed. The following will update the statistics
1207 * structure in the driver, so we'll be able to give current statistics.
1209 (void) elp_get_stats(dev
);
1212 * disable interrupts on the board
1214 outb_control(0, dev
);
1219 free_irq(dev
->irq
, dev
);
1222 free_pages((unsigned long) adapter
->dma_buffer
, get_order(DMA_BUFFER_SIZE
));
1228 /************************************************************
1230 * Set multicast list
1231 * num_addrs==0: clear mc_list
1232 * num_addrs==-1: set promiscuous mode
1233 * num_addrs>0: set mc_list
1235 ************************************************************/
1237 static void elp_set_mc_list(struct net_device
*dev
)
1239 elp_device
*adapter
= (elp_device
*) dev
->priv
;
1240 struct dev_mc_list
*dmi
= dev
->mc_list
;
1242 unsigned long flags
;
1245 printk(KERN_DEBUG
"%s: request to set multicast list\n", dev
->name
);
1247 spin_lock_irqsave(&adapter
->lock
, flags
);
1249 if (!(dev
->flags
& (IFF_PROMISC
| IFF_ALLMULTI
))) {
1250 /* send a "load multicast list" command to the board, max 10 addrs/cmd */
1251 /* if num_addrs==0 the list will be cleared */
1252 adapter
->tx_pcb
.command
= CMD_LOAD_MULTICAST_LIST
;
1253 adapter
->tx_pcb
.length
= 6 * dev
->mc_count
;
1254 for (i
= 0; i
< dev
->mc_count
; i
++) {
1255 memcpy(adapter
->tx_pcb
.data
.multicast
[i
], dmi
->dmi_addr
, 6);
1258 adapter
->got
[CMD_LOAD_MULTICAST_LIST
] = 0;
1259 if (!send_pcb(dev
, &adapter
->tx_pcb
))
1260 printk(KERN_ERR
"%s: couldn't send set_multicast command\n", dev
->name
);
1262 unsigned long timeout
= jiffies
+ TIMEOUT
;
1263 while (adapter
->got
[CMD_LOAD_MULTICAST_LIST
] == 0 && time_before(jiffies
, timeout
));
1264 if (time_after_eq(jiffies
, timeout
)) {
1265 TIMEOUT_MSG(__LINE__
);
1269 adapter
->tx_pcb
.data
.configure
= NO_LOOPBACK
| RECV_BROAD
| RECV_MULTI
;
1270 else /* num_addrs == 0 */
1271 adapter
->tx_pcb
.data
.configure
= NO_LOOPBACK
| RECV_BROAD
;
1273 adapter
->tx_pcb
.data
.configure
= NO_LOOPBACK
| RECV_PROMISC
;
1275 * configure adapter to receive messages (as specified above)
1276 * and wait for response
1279 printk(KERN_DEBUG
"%s: sending 82586 configure command\n", dev
->name
);
1280 adapter
->tx_pcb
.command
= CMD_CONFIGURE_82586
;
1281 adapter
->tx_pcb
.length
= 2;
1282 adapter
->got
[CMD_CONFIGURE_82586
] = 0;
1283 if (!send_pcb(dev
, &adapter
->tx_pcb
))
1285 spin_unlock_irqrestore(&adapter
->lock
, flags
);
1286 printk(KERN_ERR
"%s: couldn't send 82586 configure command\n", dev
->name
);
1289 unsigned long timeout
= jiffies
+ TIMEOUT
;
1290 spin_unlock_irqrestore(&adapter
->lock
, flags
);
1291 while (adapter
->got
[CMD_CONFIGURE_82586
] == 0 && time_before(jiffies
, timeout
));
1292 if (time_after_eq(jiffies
, timeout
))
1293 TIMEOUT_MSG(__LINE__
);
1297 /************************************************************
1299 * A couple of tests to see if there's 3C505 or not
1300 * Called only by elp_autodetect
1301 ************************************************************/
1303 static int __init
elp_sense(struct net_device
*dev
)
1305 int addr
= dev
->base_addr
;
1306 const char *name
= dev
->name
;
1309 if (!request_region(addr
, ELP_IO_EXTENT
, "3c505"))
1312 orig_HSR
= inb_status(addr
);
1315 printk(search_msg
, name
, addr
);
1317 if (orig_HSR
== 0xff) {
1319 printk(notfound_msg
, 1);
1323 /* Wait for a while; the adapter may still be booting up */
1325 printk(stilllooking_msg
);
1327 if (orig_HSR
& DIR) {
1328 /* If HCR.DIR is up, we pull it down. HSR.DIR should follow. */
1329 outb(0, dev
->base_addr
+ PORT_CONTROL
);
1330 set_current_state(TASK_UNINTERRUPTIBLE
);
1331 schedule_timeout(30*HZ
/100);
1332 if (inb_status(addr
) & DIR) {
1334 printk(notfound_msg
, 2);
1338 /* If HCR.DIR is down, we pull it up. HSR.DIR should follow. */
1339 outb(DIR, dev
->base_addr
+ PORT_CONTROL
);
1340 set_current_state(TASK_UNINTERRUPTIBLE
);
1341 schedule_timeout(30*HZ
/100);
1342 if (!(inb_status(addr
) & DIR)) {
1344 printk(notfound_msg
, 3);
1349 * It certainly looks like a 3c505.
1356 release_region(addr
, ELP_IO_EXTENT
);
1360 /*************************************************************
1362 * Search through addr_list[] and try to find a 3C505
1363 * Called only by eplus_probe
1364 *************************************************************/
1366 static int __init
elp_autodetect(struct net_device
*dev
)
1370 /* if base address set, then only check that address
1371 otherwise, run through the table */
1372 if (dev
->base_addr
!= 0) { /* dev->base_addr == 0 ==> plain autodetect */
1373 if (elp_sense(dev
) == 0)
1374 return dev
->base_addr
;
1376 while ((dev
->base_addr
= addr_list
[idx
++])) {
1377 if (elp_sense(dev
) == 0)
1378 return dev
->base_addr
;
1381 /* could not find an adapter */
1383 printk(couldnot_msg
, dev
->name
);
1385 return 0; /* Because of this, the layer above will return -ENODEV */
1389 /******************************************************
1391 * probe for an Etherlink Plus board at the specified address
1393 ******************************************************/
1395 /* There are three situations we need to be able to detect here:
1397 * a) the card is idle
1398 * b) the card is still booting up
1399 * c) the card is stuck in a strange state (some DOS drivers do this)
1401 * In case (a), all is well. In case (b), we wait 10 seconds to see if the
1402 * card finishes booting, and carry on if so. In case (c), we do a hard reset,
1403 * loop round, and hope for the best.
1405 * This is all very unpleasant, but hopefully avoids the problems with the old
1406 * probe code (which had a 15-second delay if the card was idle, and didn't
1407 * work at all if it was in a weird state).
1410 static int __init
elplus_setup(struct net_device
*dev
)
1412 elp_device
*adapter
= dev
->priv
;
1413 int i
, tries
, tries1
, okay
;
1414 unsigned long timeout
;
1415 unsigned long cookie
= 0;
1418 SET_MODULE_OWNER(dev
);
1421 * setup adapter structure
1424 dev
->base_addr
= elp_autodetect(dev
);
1425 if (!dev
->base_addr
)
1428 adapter
->send_pcb_semaphore
= 0;
1430 for (tries1
= 0; tries1
< 3; tries1
++) {
1431 outb_control((adapter
->hcr_val
| CMDE
) & ~DIR, dev
);
1432 /* First try to write just one byte, to see if the card is
1433 * responding at all normally.
1435 timeout
= jiffies
+ 5*HZ
/100;
1437 while (time_before(jiffies
, timeout
) && !(inb_status(dev
->base_addr
) & HCRE
));
1438 if ((inb_status(dev
->base_addr
) & HCRE
)) {
1439 outb_command(0, dev
->base_addr
); /* send a spurious byte */
1440 timeout
= jiffies
+ 5*HZ
/100;
1441 while (time_before(jiffies
, timeout
) && !(inb_status(dev
->base_addr
) & HCRE
));
1442 if (inb_status(dev
->base_addr
) & HCRE
)
1446 /* Nope, it's ignoring the command register. This means that
1447 * either it's still booting up, or it's died.
1449 printk(KERN_ERR
"%s: command register wouldn't drain, ", dev
->name
);
1450 if ((inb_status(dev
->base_addr
) & 7) == 3) {
1451 /* If the adapter status is 3, it *could* still be booting.
1452 * Give it the benefit of the doubt for 10 seconds.
1454 printk("assuming 3c505 still starting\n");
1455 timeout
= jiffies
+ 10*HZ
;
1456 while (time_before(jiffies
, timeout
) && (inb_status(dev
->base_addr
) & 7));
1457 if (inb_status(dev
->base_addr
) & 7) {
1458 printk(KERN_ERR
"%s: 3c505 failed to start\n", dev
->name
);
1460 okay
= 1; /* It started */
1463 /* Otherwise, it must just be in a strange
1464 * state. We probably need to kick it.
1466 printk("3c505 is sulking\n");
1469 for (tries
= 0; tries
< 5 && okay
; tries
++) {
1472 * Try to set the Ethernet address, to make sure that the board
1475 adapter
->tx_pcb
.command
= CMD_STATION_ADDRESS
;
1476 adapter
->tx_pcb
.length
= 0;
1477 cookie
= probe_irq_on();
1478 if (!send_pcb(dev
, &adapter
->tx_pcb
)) {
1479 printk(KERN_ERR
"%s: could not send first PCB\n", dev
->name
);
1480 probe_irq_off(cookie
);
1483 if (!receive_pcb(dev
, &adapter
->rx_pcb
)) {
1484 printk(KERN_ERR
"%s: could not read first PCB\n", dev
->name
);
1485 probe_irq_off(cookie
);
1488 if ((adapter
->rx_pcb
.command
!= CMD_ADDRESS_RESPONSE
) ||
1489 (adapter
->rx_pcb
.length
!= 6)) {
1490 printk(KERN_ERR
"%s: first PCB wrong (%d, %d)\n", dev
->name
, adapter
->rx_pcb
.command
, adapter
->rx_pcb
.length
);
1491 probe_irq_off(cookie
);
1496 /* It's broken. Do a hard reset to re-initialise the board,
1499 printk(KERN_INFO
"%s: resetting adapter\n", dev
->name
);
1500 outb_control(adapter
->hcr_val
| FLSH
| ATTN
, dev
);
1501 outb_control(adapter
->hcr_val
& ~(FLSH
| ATTN
), dev
);
1503 printk(KERN_ERR
"%s: failed to initialise 3c505\n", dev
->name
);
1507 if (dev
->irq
) { /* Is there a preset IRQ? */
1508 int rpt
= probe_irq_off(cookie
);
1509 if (dev
->irq
!= rpt
) {
1510 printk(KERN_WARNING
"%s: warning, irq %d configured but %d detected\n", dev
->name
, dev
->irq
, rpt
);
1512 /* if dev->irq == probe_irq_off(cookie), all is well */
1513 } else /* No preset IRQ; just use what we can detect */
1514 dev
->irq
= probe_irq_off(cookie
);
1515 switch (dev
->irq
) { /* Legal, sane? */
1517 printk(KERN_ERR
"%s: IRQ probe failed: check 3c505 jumpers.\n",
1524 printk(KERN_ERR
"%s: Impossible IRQ %d reported by probe_irq_off().\n",
1525 dev
->name
, dev
->irq
);
1529 * Now we have the IRQ number so we can disable the interrupts from
1530 * the board until the board is opened.
1532 outb_control(adapter
->hcr_val
& ~CMDE
, dev
);
1535 * copy Ethernet address into structure
1537 for (i
= 0; i
< 6; i
++)
1538 dev
->dev_addr
[i
] = adapter
->rx_pcb
.data
.eth_addr
[i
];
1540 /* find a DMA channel */
1542 if (dev
->mem_start
) {
1543 dev
->dma
= dev
->mem_start
& 7;
1546 printk(KERN_WARNING
"%s: warning, DMA channel not specified, using default\n", dev
->name
);
1552 * print remainder of startup message
1554 printk(KERN_INFO
"%s: 3c505 at %#lx, irq %d, dma %d, ",
1555 dev
->name
, dev
->base_addr
, dev
->irq
, dev
->dma
);
1556 printk("addr %02x:%02x:%02x:%02x:%02x:%02x, ",
1557 dev
->dev_addr
[0], dev
->dev_addr
[1], dev
->dev_addr
[2],
1558 dev
->dev_addr
[3], dev
->dev_addr
[4], dev
->dev_addr
[5]);
1561 * read more information from the adapter
1564 adapter
->tx_pcb
.command
= CMD_ADAPTER_INFO
;
1565 adapter
->tx_pcb
.length
= 0;
1566 if (!send_pcb(dev
, &adapter
->tx_pcb
) ||
1567 !receive_pcb(dev
, &adapter
->rx_pcb
) ||
1568 (adapter
->rx_pcb
.command
!= CMD_ADAPTER_INFO_RESPONSE
) ||
1569 (adapter
->rx_pcb
.length
!= 10)) {
1570 printk("not responding to second PCB\n");
1572 printk("rev %d.%d, %dk\n", adapter
->rx_pcb
.data
.info
.major_vers
, adapter
->rx_pcb
.data
.info
.minor_vers
, adapter
->rx_pcb
.data
.info
.RAM_sz
);
1575 * reconfigure the adapter memory to better suit our purposes
1577 adapter
->tx_pcb
.command
= CMD_CONFIGURE_ADAPTER_MEMORY
;
1578 adapter
->tx_pcb
.length
= 12;
1579 adapter
->tx_pcb
.data
.memconf
.cmd_q
= 8;
1580 adapter
->tx_pcb
.data
.memconf
.rcv_q
= 8;
1581 adapter
->tx_pcb
.data
.memconf
.mcast
= 10;
1582 adapter
->tx_pcb
.data
.memconf
.frame
= 10;
1583 adapter
->tx_pcb
.data
.memconf
.rcv_b
= 10;
1584 adapter
->tx_pcb
.data
.memconf
.progs
= 0;
1585 if (!send_pcb(dev
, &adapter
->tx_pcb
) ||
1586 !receive_pcb(dev
, &adapter
->rx_pcb
) ||
1587 (adapter
->rx_pcb
.command
!= CMD_CONFIGURE_ADAPTER_RESPONSE
) ||
1588 (adapter
->rx_pcb
.length
!= 2)) {
1589 printk(KERN_ERR
"%s: could not configure adapter memory\n", dev
->name
);
1591 if (adapter
->rx_pcb
.data
.configure
) {
1592 printk(KERN_ERR
"%s: adapter configuration failed\n", dev
->name
);
1595 dev
->open
= elp_open
; /* local */
1596 dev
->stop
= elp_close
; /* local */
1597 dev
->get_stats
= elp_get_stats
; /* local */
1598 dev
->hard_start_xmit
= elp_start_xmit
; /* local */
1599 dev
->tx_timeout
= elp_timeout
; /* local */
1600 dev
->watchdog_timeo
= 10*HZ
;
1601 dev
->set_multicast_list
= elp_set_mc_list
; /* local */
1602 dev
->ethtool_ops
= &netdev_ethtool_ops
; /* local */
1604 memset(&(adapter
->stats
), 0, sizeof(struct net_device_stats
));
1605 dev
->mem_start
= dev
->mem_end
= 0;
1607 err
= register_netdev(dev
);
1613 release_region(dev
->base_addr
, ELP_IO_EXTENT
);
1618 struct net_device
* __init
elplus_probe(int unit
)
1620 struct net_device
*dev
= alloc_etherdev(sizeof(elp_device
));
1623 return ERR_PTR(-ENOMEM
);
1625 sprintf(dev
->name
, "eth%d", unit
);
1626 netdev_boot_setup_check(dev
);
1628 err
= elplus_setup(dev
);
1631 return ERR_PTR(err
);
1637 static struct net_device
*dev_3c505
[ELP_MAX_CARDS
];
1638 static int io
[ELP_MAX_CARDS
];
1639 static int irq
[ELP_MAX_CARDS
];
1640 static int dma
[ELP_MAX_CARDS
];
1641 MODULE_PARM(io
, "1-" __MODULE_STRING(ELP_MAX_CARDS
) "i");
1642 MODULE_PARM(irq
, "1-" __MODULE_STRING(ELP_MAX_CARDS
) "i");
1643 MODULE_PARM(dma
, "1-" __MODULE_STRING(ELP_MAX_CARDS
) "i");
1644 MODULE_PARM_DESC(io
, "EtherLink Plus I/O base address(es)");
1645 MODULE_PARM_DESC(irq
, "EtherLink Plus IRQ number(s) (assigned)");
1646 MODULE_PARM_DESC(dma
, "EtherLink Plus DMA channel(s)");
1648 int init_module(void)
1650 int this_dev
, found
= 0;
1652 for (this_dev
= 0; this_dev
< ELP_MAX_CARDS
; this_dev
++) {
1653 struct net_device
*dev
= alloc_etherdev(sizeof(elp_device
));
1657 dev
->irq
= irq
[this_dev
];
1658 dev
->base_addr
= io
[this_dev
];
1659 if (dma
[this_dev
]) {
1660 dev
->dma
= dma
[this_dev
];
1663 printk(KERN_WARNING
"3c505.c: warning, using default DMA channel,\n");
1665 if (io
[this_dev
] == 0) {
1670 printk(KERN_NOTICE
"3c505.c: module autoprobe not recommended, give io=xx.\n");
1672 if (elplus_setup(dev
) != 0) {
1673 printk(KERN_WARNING
"3c505.c: Failed to register card at 0x%x.\n", io
[this_dev
]);
1677 dev_3c505
[this_dev
] = dev
;
1685 void cleanup_module(void)
1689 for (this_dev
= 0; this_dev
< ELP_MAX_CARDS
; this_dev
++) {
1690 struct net_device
*dev
= dev_3c505
[this_dev
];
1692 unregister_netdev(dev
);
1693 release_region(dev
->base_addr
, ELP_IO_EXTENT
);
1700 MODULE_LICENSE("GPL");